Stability and motion characteristics in a vibrating system with five rigid frames driven by two counter-rotating exciters

A new dynamical model with five rigid frames (RFs), driven by two counter-rotating exciters, is proposed to explore the synchronization, stability, and motion characteristics of the system in this paper. The motion differential equations and the corresponding responses of the system are given firstl...

Full description

Bibliographic Details
Main Authors: Wenchao Hu, Xueliang Zhang, Wei Zhang, Weihao Chen, Shiju Cui
Format: Article
Language:English
Published: SAGE Publishing 2021-12-01
Series:Journal of Low Frequency Noise, Vibration and Active Control
Online Access:https://doi.org/10.1177/14613484211019643
_version_ 1818839425208025088
author Wenchao Hu
Xueliang Zhang
Wei Zhang
Weihao Chen
Shiju Cui
author_facet Wenchao Hu
Xueliang Zhang
Wei Zhang
Weihao Chen
Shiju Cui
author_sort Wenchao Hu
collection DOAJ
description A new dynamical model with five rigid frames (RFs), driven by two counter-rotating exciters, is proposed to explore the synchronization, stability, and motion characteristics of the system in this paper. The motion differential equations and the corresponding responses of the system are given firstly. Using the average method, the average torque balance equations for the two exciters are deduced. According to the relationship between the difference of the dimensionless effective output electromagnetic torques for the two motors and the coupling torques of the system, the theory condition of realizing synchronization is obtained. Based on the Hamilton’s theory, the theory condition of stability of the system is deduced. The stability and motion characteristics of the system for different resonant regions are qualitatively discussed in numeric, including the stable phase difference of the two exciters, relative phase relationships among the five rigid frames, amplitude-frequency characteristics, stability coefficients, and the effective load torque between the two exciters. Simulations are carried out to further quantitatively validate the feasibility of the above theoretical and numerical qualitative results. It is shown that in engineering the reasonable working points of the system should be selected in Region II, only in this way, can the synchronous and stable relative linear motion of the system with the zero stable phase difference in vertical direction be realized, and in this case, the vibrations of the four inner rigid frames (IRFs) in the horizontal direction are compensated with each other, and the energy is also saved due to utilizing the resonant effect. Based on the present work, some new types of vibrating coolers/dryers or vibrating screening machines can be designed.
first_indexed 2024-12-19T03:54:05Z
format Article
id doaj.art-c070666031ad44799e80e885c8b78880
institution Directory Open Access Journal
issn 1461-3484
2048-4046
language English
last_indexed 2024-12-19T03:54:05Z
publishDate 2021-12-01
publisher SAGE Publishing
record_format Article
series Journal of Low Frequency Noise, Vibration and Active Control
spelling doaj.art-c070666031ad44799e80e885c8b788802022-12-21T20:36:51ZengSAGE PublishingJournal of Low Frequency Noise, Vibration and Active Control1461-34842048-40462021-12-014010.1177/14613484211019643Stability and motion characteristics in a vibrating system with five rigid frames driven by two counter-rotating excitersWenchao HuXueliang ZhangWei ZhangWeihao ChenShiju CuiA new dynamical model with five rigid frames (RFs), driven by two counter-rotating exciters, is proposed to explore the synchronization, stability, and motion characteristics of the system in this paper. The motion differential equations and the corresponding responses of the system are given firstly. Using the average method, the average torque balance equations for the two exciters are deduced. According to the relationship between the difference of the dimensionless effective output electromagnetic torques for the two motors and the coupling torques of the system, the theory condition of realizing synchronization is obtained. Based on the Hamilton’s theory, the theory condition of stability of the system is deduced. The stability and motion characteristics of the system for different resonant regions are qualitatively discussed in numeric, including the stable phase difference of the two exciters, relative phase relationships among the five rigid frames, amplitude-frequency characteristics, stability coefficients, and the effective load torque between the two exciters. Simulations are carried out to further quantitatively validate the feasibility of the above theoretical and numerical qualitative results. It is shown that in engineering the reasonable working points of the system should be selected in Region II, only in this way, can the synchronous and stable relative linear motion of the system with the zero stable phase difference in vertical direction be realized, and in this case, the vibrations of the four inner rigid frames (IRFs) in the horizontal direction are compensated with each other, and the energy is also saved due to utilizing the resonant effect. Based on the present work, some new types of vibrating coolers/dryers or vibrating screening machines can be designed.https://doi.org/10.1177/14613484211019643
spellingShingle Wenchao Hu
Xueliang Zhang
Wei Zhang
Weihao Chen
Shiju Cui
Stability and motion characteristics in a vibrating system with five rigid frames driven by two counter-rotating exciters
Journal of Low Frequency Noise, Vibration and Active Control
title Stability and motion characteristics in a vibrating system with five rigid frames driven by two counter-rotating exciters
title_full Stability and motion characteristics in a vibrating system with five rigid frames driven by two counter-rotating exciters
title_fullStr Stability and motion characteristics in a vibrating system with five rigid frames driven by two counter-rotating exciters
title_full_unstemmed Stability and motion characteristics in a vibrating system with five rigid frames driven by two counter-rotating exciters
title_short Stability and motion characteristics in a vibrating system with five rigid frames driven by two counter-rotating exciters
title_sort stability and motion characteristics in a vibrating system with five rigid frames driven by two counter rotating exciters
url https://doi.org/10.1177/14613484211019643
work_keys_str_mv AT wenchaohu stabilityandmotioncharacteristicsinavibratingsystemwithfiverigidframesdrivenbytwocounterrotatingexciters
AT xueliangzhang stabilityandmotioncharacteristicsinavibratingsystemwithfiverigidframesdrivenbytwocounterrotatingexciters
AT weizhang stabilityandmotioncharacteristicsinavibratingsystemwithfiverigidframesdrivenbytwocounterrotatingexciters
AT weihaochen stabilityandmotioncharacteristicsinavibratingsystemwithfiverigidframesdrivenbytwocounterrotatingexciters
AT shijucui stabilityandmotioncharacteristicsinavibratingsystemwithfiverigidframesdrivenbytwocounterrotatingexciters